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Paper · arXiv 2512.03041

MultiShotMaster: A Controllable Multi-Shot Video Generation Framework

Qinghe Wang, Xiaoyu Shi, Baolu Li, Weikang Bian, Quande Liu, Huchuan Lu, Xintao Wang, Pengfei Wan, Kun Gai, Xu Jia

65 upvotesDecember 2, 2025arXiv 预印本
AI 摘要

MultiShotMaster extends a single-shot model with novel RoPE variants for flexible and controllable multi-shot video generation, addressing data scarcity with an automated annotation pipeline.

RoPEMulti-Shot Narrative RoPESpatiotemporal Position-Aware RoPEreference tokenscross-shot grounding signalsreference imagestext-driven inter-shot consistencymotion controlbackground-driven customized scene

Abstract

Current video generation techniques excel at single-shot clips but struggle to produce narrative multi-shot videos, which require flexible shot arrangement, coherent narrative, and controllability beyond text prompts. To tackle these challenges, we propose MultiShotMaster, a framework for highly controllable multi-shot video generation. We extend a pretrained single-shot model by integrating two novel variants of RoPE. First, we introduce Multi-Shot Narrative RoPE, which applies explicit phase shift at shot transitions, enabling flexible shot arrangement while preserving the temporal narrative order. Second, we design Spatiotemporal Position-Aware RoPE to incorporate reference tokens and grounding signals, enabling spatiotemporal-grounded reference injection. In addition, to overcome data scarcity, we establish an automated data annotation pipeline to extract multi-shot videos, captions, cross-shot grounding signals and reference images. Our framework leverages the intrinsic architectural properties to support multi-shot video generation, featuring text-driven inter-shot consistency, customized subject with motion control, and background-driven customized scene. Both shot count and duration are flexibly configurable. Extensive experiments demonstrate the superior performance and outstanding controllability of our framework.

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